Allicdata Part #: | SFS44S20-10K388E-F-ND |
Manufacturer Part#: |
SFS44S20-10K388E-F |
Price: | $ 0.00 |
Product Category: | Capacitors |
Manufacturer: | Cornell Dubilier Electronics (CDE) |
Short Description: | CAP 440VAC 2.0" QC TERM |
More Detail: | 10µF, 20µF Bussed Capacitor 2 Array 440V Radial, ... |
DataSheet: | SFS44S20-10K388E-F Datasheet/PDF |
Quantity: | 1000 |
Lead Free Status / RoHS Status: | Lead free / RoHS Compliant |
Moisture Sensitivity Level (MSL): | 1 (Unlimited) |
1 +: | 0.00000 |
Series: | SF, Dual Motor Start |
Packaging: | Bulk |
Lead Free Status / RoHS Status: | -- |
Part Status: | Obsolete |
Moisture Sensitivity Level (MSL): | -- |
Capacitance: | 10µF, 20µF |
Tolerance: | ±10% |
Voltage - Rated: | 440V |
Dielectric Material: | Polypropylene (PP) Film, Metallized |
Number of Capacitors: | 2 |
Circuit Type: | Bussed |
Temperature Coefficient: | -- |
Ratings: | -- |
Mounting Type: | Chassis Mount |
Package / Case: | Radial, Can |
Size / Dimension: | 2.120" Dia (53.85mm), Lip |
Height - Seated (Max): | 4.000" (101.60mm) |
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Capacitor networks and arrays are naturally a great choice when wanting to use SFS44S20-10K388E-F capacitors. These capacitors provide reliable, low noise performance and are great for use in many applications.
A capacitor network is a group of capacitors connected in a certain way to achieve a distinct function. Networks are commonly used in electronic systems that require multiple components to be connected together. The SFS44S20-10K388E-F capacitors make excellent choices for circuit networks, because they are capable of providing low noise performance in a variety of applications.
Simply put, a capacitor network allows for the energy stored in one capacitor to be distributed across a series of other capacitors. This is done by connecting each of the capacitors in series. Then, the energy stored in the first capacitor is shared equally among the connected capacitors. In the case of the SFS44S20-10K388E-F capacitors, this is achieved by using interconnects that are capable of transferring very low current and managing the transfer of energy between the capacitors.
Capacitor arrays are also a great way to take advantage of the performance of the SFS44S20-10K388E-F capacitors. An array is essentially a group of capacitors arranged in specific rows and columns to achieve a desired purpose. These arrays can be used to both store and deliver energy.
When using an array, the energy stored in each capacitor is shared among all the other capacitors. When connected in series, the energy stored in the first capacitor is transferred across the other capacitors. This method of transferring energy is referred to as a “multi-tap” method. The SFS44S20-10K388E-F capacitors are well-suited for this method of energy delivery, as they are low-noise and reliable.
Capacitor networks and arrays both have the same general working principles: they use interconnects to share the stored energy among multiple capacitors. This allows for efficient energy storage and delivery, while also providing low-noise performance. The SFS44S20-10K388E-F capacitors make excellent choices for these applications, because they are reliable and suitable for very low-current transfers.
The SFS44S20-10K388E-F capacitors can be used in a variety of applications, from RV power systems to telecommunications systems and automotive electrical systems. The low-noise performance of these capacitors makes them excellent choices for applications that need to operate with maximum efficiency and minimal interference.
In summary, capacitor networks and arrays and the SFS44S20-10K388E-F capacitors are great choices for a variety of electrical applications. These capacitors are reliable and provide low-noise performance, making them suitable for a wide range of applications. Capacitor networks and arrays are typically used to store and deliver energy across multiple capacitors, while the multi-tap method of transfer ensures the capacitors maintain their low-noise performance.
The specific data is subject to PDF, and the above content is for reference
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